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227 lines
6.3 KiB
227 lines
6.3 KiB
/*
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LUFA Library
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Copyright (C) Dean Camera, 2009.
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dean [at] fourwalledcubicle [dot] com
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www.fourwalledcubicle.com
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*/
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/*
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Copyright 2009 Dean Camera (dean [at] fourwalledcubicle [dot] com)
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Permission to use, copy, modify, and distribute this software
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and its documentation for any purpose and without fee is hereby
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granted, provided that the above copyright notice appear in all
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copies and that both that the copyright notice and this
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permission notice and warranty disclaimer appear in supporting
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documentation, and that the name of the author not be used in
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advertising or publicity pertaining to distribution of the
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software without specific, written prior permission.
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The author disclaim all warranties with regard to this
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software, including all implied warranties of merchantability
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and fitness. In no event shall the author be liable for any
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special, indirect or consequential damages or any damages
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whatsoever resulting from loss of use, data or profits, whether
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in an action of contract, negligence or other tortious action,
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arising out of or in connection with the use or performance of
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this software.
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*/
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#define INCLUDE_FROM_DYNALLOC_C
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#include "DynAlloc.h"
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struct
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{
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char Mem_Heap[NUM_BLOCKS * BLOCK_SIZE];
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void* Mem_Handles[NUM_HANDLES];
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uint8_t Mem_Block_Flags[(NUM_BLOCKS / 4) + ((NUM_BLOCKS % 4) ? 1 : 0)];
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uint8_t FlagMaskLookupMask[4];
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uint8_t FlagMaskLookupNum[4];
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} Mem_MemData = {FlagMaskLookupMask: {(3 << 0), (3 << 2), (3 << 4), (3 << 6)},
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FlagMaskLookupNum: { 0, 2, 4, 6}};
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static uint8_t Mem_GetBlockFlags(const Block_Number_t BlockNum)
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{
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const Block_Number_t BlockIndex = (BlockNum >> 2);
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const uint8_t FlagMask = Mem_MemData.FlagMaskLookupMask[BlockNum & 0x03];
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const uint8_t FlagMaskShift = Mem_MemData.FlagMaskLookupNum[BlockNum & 0x03];
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return ((Mem_MemData.Mem_Block_Flags[BlockIndex] & FlagMask) >> FlagMaskShift);
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}
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static void Mem_SetBlockFlags(const Block_Number_t BlockNum, const uint8_t Flags)
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{
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const Block_Number_t BlockIndex = (BlockNum >> 2);
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const uint8_t FlagMask = Mem_MemData.FlagMaskLookupMask[BlockNum & 0x03];
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const uint8_t FlagMaskShift = Mem_MemData.FlagMaskLookupNum[BlockNum & 0x03];
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Mem_MemData.Mem_Block_Flags[BlockIndex] &= ~FlagMask;
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Mem_MemData.Mem_Block_Flags[BlockIndex] |= (Flags << FlagMaskShift);
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}
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static inline void Mem_Defrag(void)
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{
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Block_Number_t FreeStartBlock = 0;
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char* FreeStartPtr = NULL;
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char* UsedStartPtr = NULL;
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Block_Number_t CurrBlock;
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for (CurrBlock = 0; CurrBlock < NUM_BLOCKS; CurrBlock++)
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{
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if (!(Mem_GetBlockFlags(CurrBlock) & BLOCK_USED_MASK))
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{
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FreeStartPtr = &Mem_MemData.Mem_Heap[CurrBlock * BLOCK_SIZE];
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FreeStartBlock = CurrBlock;
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break;
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}
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}
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if (FreeStartPtr == NULL)
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return;
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while (++CurrBlock < NUM_BLOCKS)
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{
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uint8_t CurrBlockFlags = Mem_GetBlockFlags(CurrBlock);
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if (CurrBlockFlags & BLOCK_USED_MASK)
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{
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UsedStartPtr = &Mem_MemData.Mem_Heap[CurrBlock * BLOCK_SIZE];
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for (Handle_Number_t HandleNum = 0; HandleNum < NUM_HANDLES; HandleNum++)
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{
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if (Mem_MemData.Mem_Handles[HandleNum] == UsedStartPtr)
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{
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Mem_MemData.Mem_Handles[HandleNum] = FreeStartPtr;
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break;
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}
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}
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memcpy(FreeStartPtr, UsedStartPtr, BLOCK_SIZE);
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FreeStartPtr += BLOCK_SIZE;
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Mem_SetBlockFlags(FreeStartBlock++, CurrBlockFlags);
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Mem_SetBlockFlags(CurrBlock, 0);
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}
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}
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}
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static inline bool Mem_FindFreeBlocks(Block_Number_t* const RetStartPtr, const Block_Number_t Blocks)
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{
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Block_Number_t FreeInCurrSec = 0;
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for (Block_Number_t CurrBlock = 0; CurrBlock < NUM_BLOCKS; CurrBlock++)
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{
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if (Mem_GetBlockFlags(CurrBlock) & BLOCK_USED_MASK)
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FreeInCurrSec = 0;
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else
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FreeInCurrSec++;
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if (FreeInCurrSec >= Blocks)
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{
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*RetStartPtr = CurrBlock;
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return true;
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}
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}
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return false;
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}
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Mem_Handle_t Mem_Alloc(const Alloc_Size_t Bytes)
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{
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Block_Number_t ReqBlocks = (Bytes / BLOCK_SIZE);
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Block_Number_t StartBlock;
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if (Bytes % BLOCK_SIZE)
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ReqBlocks++;
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if (!(Mem_FindFreeBlocks(&StartBlock, ReqBlocks)))
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{
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Mem_Defrag();
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if (!(Mem_FindFreeBlocks(&StartBlock, ReqBlocks)))
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return NULL;
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}
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for (Block_Number_t UsedBlock = 0; UsedBlock < (ReqBlocks - 1); UsedBlock++)
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Mem_SetBlockFlags((StartBlock + UsedBlock), (BLOCK_USED_MASK | BLOCK_LINKED_MASK));
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Mem_SetBlockFlags((StartBlock + (ReqBlocks - 1)), BLOCK_USED_MASK);
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for (Handle_Number_t AllocEntry = 0; AllocEntry < NUM_HANDLES; AllocEntry++)
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{
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Mem_Handle_t CurrHdl = (Mem_Handle_t)&Mem_MemData.Mem_Handles[AllocEntry];
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if (DEREF(CurrHdl, void*) == NULL)
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{
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DEREF(CurrHdl, void*) = &Mem_MemData.Mem_Heap[StartBlock * BLOCK_SIZE];
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return CurrHdl;
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}
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}
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return NULL;
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}
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Mem_Handle_t Mem_Realloc(Mem_Handle_t CurrAllocHdl, const Alloc_Size_t Bytes)
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{
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Mem_Free(CurrAllocHdl);
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return Mem_Alloc(Bytes);
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}
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Mem_Handle_t Mem_Calloc(const Alloc_Size_t Bytes)
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{
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Mem_Handle_t AllocHdl = Mem_Alloc(Bytes);
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if (AllocHdl != NULL)
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memset(DEREF(AllocHdl, void*), 0x00, Bytes);
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return AllocHdl;
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}
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void Mem_Free(Mem_Handle_t CurrAllocHdl)
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{
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char* MemBlockPtr = DEREF(CurrAllocHdl, char*);
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Block_Number_t CurrBlock = ((uint16_t)(MemBlockPtr - Mem_MemData.Mem_Heap) / BLOCK_SIZE);
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uint8_t CurrBlockFlags;
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if ((CurrAllocHdl == NULL) || (MemBlockPtr == NULL))
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return;
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do
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{
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CurrBlockFlags = Mem_GetBlockFlags(CurrBlock);
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Mem_SetBlockFlags(CurrBlock, 0);
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CurrBlock++;
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}
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while (CurrBlockFlags & BLOCK_LINKED_MASK);
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DEREF(CurrAllocHdl, void*) = NULL;
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}
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Block_Number_t Mem_TotalFreeBlocks(void)
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{
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Block_Number_t FreeBlocks = 0;
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for (Block_Number_t CurrBlock = 0; CurrBlock < NUM_BLOCKS; CurrBlock++)
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{
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if (!(Mem_GetBlockFlags(CurrBlock) & BLOCK_USED_MASK))
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FreeBlocks++;
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}
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return FreeBlocks;
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}
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Handle_Number_t Mem_TotalFreeHandles(void)
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{
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Handle_Number_t FreeHandles = 0;
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for (Handle_Number_t CurrHandle = 0; CurrHandle < NUM_HANDLES; CurrHandle++)
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{
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if (Mem_MemData.Mem_Handles[CurrHandle] == NULL)
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FreeHandles++;
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}
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return FreeHandles;
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}
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